Citation: | WANG Y G, ZHANG F, WU X F, et al. Effects of Substituting Refined Forage with Beer Lees on Digestion and Microbial Diversity of Hu Sheep Rumen [J]. Fujian Journal of Agricultural Sciences,2023,38(3):262−270 doi: 10.19303/j.issn.1008-0384.2023.03.002 |
[1] |
汪成, 王之盛, 胡瑞, 等. 不同类型白酒糟对西杂牛生长性能、养分表观消化率、血清生化指标及瘤胃发酵参数的影响 [J]. 动物营养学报, 2021, 33(2):913−922. doi: 10.3969/j.issn.1006-267x.2021.02.032
WANG C, WANG Z S, HU R, et al. Effects of different types of white distiller’s grains on growth performance, nutrient apparent digestibility, serum biochemical indexes and rumen fermentation parameters of Simmental crossbred cattle [J]. Chinese Journal of Animal Nutrition, 2021, 33(2): 913−922.(in Chinese) doi: 10.3969/j.issn.1006-267x.2021.02.032
|
[2] |
宾冬梅. 啤酒糟发酵研究进展 [J]. 湖南农业科学, 2013(22):32−35. doi: 10.3969/j.issn.1006-060X.2013.22.011
BIN D M. Research progress of beer lees fermentation [J]. Hunan Agricultural Sciences, 2013(22): 32−35.(in Chinese) doi: 10.3969/j.issn.1006-060X.2013.22.011
|
[3] |
张磊, 徐杨, 潘孝青, 等. 啤酒糟发酵饲料研究进展 [J]. 饲料研究, 2022, 45(3):154−156. doi: 10.13557/j.cnki.issn1002-2813.2022.03.031
ZHANG L, XU Y, PAN X Q, et al. Research progress on fermented feed from brewer’s grains [J]. Feed Research, 2022, 45(3): 154−156.(in Chinese) doi: 10.13557/j.cnki.issn1002-2813.2022.03.031
|
[4] |
谢华德, 谢芳, 梁辛, 等. 乳酸菌和啤酒糟对象草青贮发酵品质及营养价值的影响 [J]. 饲料研究, 2021, 44(9):99−103.
XIE H D, XIE F, LIANG X, et al. Effect of wet brewers’ grains and lactic acid bacteria supplementation on the qualities and nutrients concentration of elephant grass silage [J]. Feed Research, 2021, 44(9): 99−103.(in Chinese)
|
[5] |
中华人民共和国统计局. 中国统计年鉴[M]. 北京: 中国统计出版社, 2021.
|
[6] |
毛胜勇, 朱伟云. 反刍动物瘤胃真菌在饲料降解中的作用 [J]. 黑龙江畜牧兽医, 2000(12):31−33. doi: 10.3969/j.issn.1004-7034.2000.12.021
MAO S Y, ZHU W Y. Function of rumen fungi in rumen of ruminants in feed degradation [J]. Heilongjinag Journal of Animal Science and Veterinary Medicine, 2000(12): 31−33.(in Chinese) doi: 10.3969/j.issn.1004-7034.2000.12.021
|
[7] |
马健, 范雪, 陈晖, 等. 奶牛瘤胃微生物的研究进展 [J]. 中国奶牛, 2019(6):6−11.
MA J, FAN X, CHEN H, et al. Research progress of rumen microorganism in dairy cows [J]. China Dairy Cattle, 2019(6): 6−11.(in Chinese)
|
[8] |
HATUNGIMANA E, STAHL T C, ERICKSON P S. Growth performance and apparent total tract nutrient digestibility of limit-fed diets containing wet brewer’s grains to Holstein heifers [J]. Translational Animal Science, 2020, 4(3): txaa079. doi: 10.1093/tas/txaa079
|
[9] |
IMAIZUMI H, BATISTEL F, DE SOUZA J, et al. Replacing soybean meal for wet brewer’s grains or urea on the performance of lactating dairy cows [J]. Tropical Animal Health and Production, 2015, 47(5): 877−882. doi: 10.1007/s11250-015-0802-y
|
[10] |
黄继康, 高杨, 张同平, 等. 啤酒糟在肉羊生产中应用观察 [J]. 中国畜禽种业, 2018, 14(11):122. doi: 10.3969/j.issn.1673-4556.2018.11.099
HUANG J K, GAO Y, ZHANG T P, et al. Observation on the application of beer lees in mutton sheep production [J]. The Chinese Livestock and Poultry Breeding, 2018, 14(11): 122.(in Chinese) doi: 10.3969/j.issn.1673-4556.2018.11.099
|
[11] |
FACCENDA A, ZAMBOM M A, CASTAGNARA D D, et al. Use of dried brewers' grains instead of soybean meal to feed lactating cows [J]. Revista Brasileira De Zootecnia, 2017, 46(1): 39−46. doi: 10.1590/s1806-92902017000100007
|
[12] |
李鹏程. 啤酒糟对育肥山羊瘤胃发酵及宏基因组的影响[D]. 绵阳: 西南科技大学, 2021.
LI P C. Effects of brewer’s grains on rumen fermentation and metagenome of fattening goats[D]. Mianyang: Southwest University of Science and Technology, 2021. (in Chinese)
|
[13] |
李文杨, 王迎港, 吴贤锋, 等. 啤酒糟替代饲粮中不同比例精料对湖羊生长性能、营养物质表观消化率、氮代谢和血清生化指标的影响 [J]. 动物营养学报, 2022, 34(10):6539−6549.
LI W Y, WANG Y G, WU X F, et al. Effects of different proportions of concentrate replaced by brewer’s grains in diets on growth performance, nutrient apparent digestibility, nitrogen metabolism and serum biochemical indices of hu sheep [J]. Chinese Journal of Animal Nutrition, 2022, 34(10): 6539−6549.(in Chinese)
|
[14] |
中华人民共和国农业部. 肉羊饲养标准: NY/T 816—2004[S]. 北京: 中国农业出版社, 2004.
|
[15] |
刘洁. 肉用绵羊饲料代谢能与代谢蛋白质预测模型的研究[D]. 北京: 中国农业科学院, 2012.
LIU J. Prediciton of metabolizable energy and metabolizable protein in feeds for meat sheep[D]. Beijing: Chinese Academy of Agricultural Sciences, 2012. (in Chinese)
|
[16] |
郭旭东. 芦丁对奶牛泌乳性能、瘤胃消化代谢和对大鼠乳腺发育的影响[D]. 北京: 中国农业科学院, 2011.
GUO X D. Studies of rutin’s role on lactation performance, the rumen digestion and metabolism in dairy cows, and the development of mammary glands in rats[D]. Beijing: Chinese Academy of Agricultural Sciences, 2011. (in Chinese)
|
[17] |
EDGAR R C. UPARSE: Highly accurate OTU sequences from microbial amplicon reads [J]. Nature Methods, 2013, 10(10): 996−998. doi: 10.1038/nmeth.2604
|
[18] |
WHITE J R, NAGARAJAN N, POP M. Statistical methods for detecting differentially abundant features in clinical metagenomic samples [J]. PLoS Computational Biology, 2009, 5(4): e1000352. doi: 10.1371/journal.pcbi.1000352
|
[19] |
WANG C, LIU Q, GUO G, et al. Effects of rumen-protected folic acid on ruminal fermentation, microbial enzyme activity, cellulolytic bacteria and urinary excretion of purine derivatives in growing beef steers [J]. Animal Feed Science and Technology, 2016, 221: 185−194. doi: 10.1016/j.anifeedsci.2016.09.006
|
[20] |
HALL M B. Challenges with nonfiber carbohydrate methods, [J]. Journal of Animal Science, 2003, 81(12): 3226−3232. doi: 10.2527/2003.81123226x
|
[21] |
吕永艳, 蔡李逢, 崔海净, 等. 奶牛日粮中复合处理玉米秸与苜蓿及精料的最佳组合研究 [J]. 中国饲料, 2012(19):14−18. doi: 10.3969/j.issn.1004-3314.2012.19.007
LÜ Y Y, CAI L F, CUI H J, et al. The optimal combination of complex treatment of maize straw, alfalfa hay and concentrate in dairy cattle dietary [J]. China Feed, 2012(19): 14−18.(in Chinese) doi: 10.3969/j.issn.1004-3314.2012.19.007
|
[22] |
苏勇华, 方雷, 应璐, 等. 枯草芽孢杆菌对多浪羊消化率、瘤胃发酵参数及血液指标的影响 [J]. 江苏农业科学, 2018, 46(8):162−166.
SU Y H, FANG L, YING L, et al. Effects of Bacillus subtilis on nutrient digestibility, rumen fermentation and blood indices of Duolang sheep [J]. Jiangsu Agricultural Sciences, 2018, 46(8): 162−166.(in Chinese)
|
[23] |
REZAEI J, ROUZBEHAN Y, FAZAELI H, et al. Effects of substituting amaranth silage for corn silage on intake, growth performance, diet digestibility, microbial protein, nitrogen retention and ruminal fermentation in fattening lambs [J]. Animal Feed Science and Technology, 2014, 192: 29−38. doi: 10.1016/j.anifeedsci.2014.03.005
|
[24] |
王绿叶, 和东迁, 张倩, 等. 不同剩余采食量滩羊瘤胃发酵参数的研究 [J]. 中国草食动物科学, 2022, 42(4):69−73. doi: 10.3969/j.issn.2095-3887.2022.04.015
WANG L Y, HE D Q, ZHANG Q, et al. Study on rumen fermentation parameters of Tan sheep with different residual feed intake [J]. China Herbivore Science, 2022, 42(4): 69−73.(in Chinese) doi: 10.3969/j.issn.2095-3887.2022.04.015
|
[25] |
张兴夫, 钱英红, 李国东, 等. 不同粗饲料日粮对西门塔尔繁殖母牛瘤胃发酵和血液指标的影响 [J]. 畜牧与饲料科学, 2022, 43(5):22−28. doi: 10.12160/j.issn.1672-5190.2022.05.004
ZHANG X F, QIAN Y H, LI G D, et al. Effects of different forage diets on ruminal fermentation and blood parameters of Simmental brood cows [J]. Animal Husbandry and Feed Science, 2022, 43(5): 22−28.(in Chinese) doi: 10.12160/j.issn.1672-5190.2022.05.004
|
[26] |
曹善勇. 肉牛常用饲料瘤胃降解特性及日粮类型对瘤胃发酵影响的研究[D]. 泰安: 山东农业大学, 2015.
CAO S Y. The degradation characteristics of common feeds of beef cattle and the influence of diet type on rumen fermentation[D]. Taian: Shandong Agricultural University, 2015. (in Chinese)
|
[27] |
黄雅莉. 啤酒糟、木薯渣对奶水牛体外瘤胃发酵特性和产奶性能的影响[D]. 南宁: 广西大学, 2012.
HUANG Y L. Effects of distiller’s grains and cassava pulp on rumen fermentation characteristics in vitro and milk performance of water buffalo[D]. Nanning: Guangxi University, 2012. (in Chinese)
|
[28] |
GRICE E A, KONG H H, CONLAN S, et al. Topographical and temporal diversity of the human skin microbiome [J]. Science, 2009, 324(5931): 1190−1192. doi: 10.1126/science.1171700
|
[29] |
LI H Y, LI S N, WANG S X, et al. Degradation of lignocellulose in the corn straw by Bacillus amyloliquefaciens MN-8 [J]. Chinese Journal of Applied Ecology, 2015, 26(5): 1404−1410.
|
[30] |
ALZAHAL O, LI F Y, GUAN L L, et al. Factors influencing ruminal bacterial community diversity and composition and microbial fibrolytic enzyme abundance in lactating dairy cows with a focus on the role of active dry yeast [J]. Journal of Dairy Science, 2017, 100(6): 4377−4393. doi: 10.3168/jds.2016-11473
|
[31] |
KITTELMANN S, KIRK M R, JONKER A, et al. Buccal swabbing as a noninvasive method to determine bacterial, archaeal, and eukaryotic microbial community structures in the rumen [J]. Applied and Environmental Microbiology, 2015, 81(21): 7470−7483. doi: 10.1128/AEM.02385-15
|
[32] |
MU C T, DING N, HAO X Y, et al. Effects of different proportion of buckwheat straw and corn straw on performance, rumen fermentation and rumen microbiota composition of fattening lambs [J]. Small Ruminant Research, 2019, 181: 21−28. doi: 10.1016/j.smallrumres.2019.09.006
|
[33] |
SINGH K M, AHIR V B, TRIPATHI A K, et al. Metagenomic analysis of Surti buffalo (Bubalus bubalis) rumen: A preliminary study [J]. Molecular Biology Reports, 2012, 39(4): 4841−4848. doi: 10.1007/s11033-011-1278-0
|
[34] |
KAAKOUSH N O. Insights into the role of Erysipelotrichaceae in the human host [J]. Frontiers in Cellular and Infection Microbiology, 2015, 5: 84.
|
[35] |
ALI AHMAD A, YANG C, ZHANG J B, et al. Effects of dietary energy levels on rumen fermentation, microbial diversity, and feed efficiency of yaks (Bos grunniens) [J]. Frontiers in Microbiology, 2020, 11: 625. doi: 10.3389/fmicb.2020.00625
|
[36] |
STAPPENBECK T S, HOOPER L V, GORDON J I. Developmental regulation of intestinal angiogenesis by indigenous microbes via Paneth cells [J]. Proceedings of the National Academy of Sciences of the United States of America, 2002, 99(24): 15451−15455. doi: 10.1073/pnas.202604299
|
[37] |
SEARS C L. A dynamic partnership: Celebrating our gut flora [J]. Anaerobe, 2005, 11(5): 247−251. doi: 10.1016/j.anaerobe.2005.05.001
|
[38] |
WANG L L, HATEM A, CATALYUREK U V, et al. Metagenomic insights into the carbohydrate-active enzymes carried by the microorganisms adhering to solid digesta in the rumen of cows [J]. PLoS One, 2013, 8(11): e78507. doi: 10.1371/journal.pone.0078507
|
[39] |
PETRI R M, SCHWAIGER T, PENNER G B, et al. Changes in the rumen epimural bacterial diversity of beef cattle as affected by diet and induced ruminal acidosis [J]. Applied and Environmental Microbiology, 2013, 79(12): 3744−3755. doi: 10.1128/AEM.03983-12
|
[40] |
SONG S D, CHEN G J, GUO C H, et al. Effects of exogenous fibrolytic enzyme supplementation to diets with different NFC/NDF ratios on the growth performance, nutrient digestibility and ruminal fermentation in Chinese domesticated black goats [J]. Animal Feed Science and Technology, 2018, 236: 170−177. doi: 10.1016/j.anifeedsci.2017.12.008
|
[41] |
GUO W, GUO X J, XU L N, et al. Effect of whole-plant corn silage treated with lignocellulose-degrading bacteria on growth performance, rumen fermentation, and rumen microflora in sheep [J]. Animal:an International Journal of Animal Bioscience, 2022, 16(7): 100576. doi: 10.1016/j.animal.2022.100576
|
[42] |
KRAUSE D O, DENMAN S E, MACKIE R I, et al. Opportunities to improve fiber degradation in the rumen: Microbiology, ecology, and genomics [J]. FEMS Microbiology Reviews, 2003, 27(5): 663−693. doi: 10.1016/S0168-6445(03)00072-X
|
[43] |
CHIQUETTE J, ALLISON M J, RASMUSSEN M. Use of Prevotella bryantii 25A and a commercial probiotic during subacute acidosis challenge in midlactation dairy cows [J]. Journal of Dairy Science, 2012, 95(10): 5985−5995. doi: 10.3168/jds.2012-5511
|
[44] |
REICHARDT N, DUNCAN S H, YOUNG P, et al. Erratum: Phylogenetic distribution of three pathways for propionate production within the human gut microbiota [J]. The ISME Journal, 2014, 8(6): 1352. doi: 10.1038/ismej.2014.48
|
[45] |
DIAS J, MARCONDES M I, NORONHA M F, et al. Effect of pre-weaning diet on the ruminal archaeal, bacterial, and fungal communities of dairy calves [J]. Frontiers in Microbiology, 2017, 8: 1553. doi: 10.3389/fmicb.2017.01553
|
[46] |
祁敏丽. 反刍动物瘤胃发育研究进展 [J]. 中国草食动物科学, 2015, 35(5):62−65. doi: 10.3969/j.issn.2095-3887.2015.05.017
QI M L. Review on rumen development [J]. China Herbivore Science, 2015, 35(5): 62−65.(in Chinese) doi: 10.3969/j.issn.2095-3887.2015.05.017
|
[47] |
张瑜, 张叁保, 申玉建, 等. 2个品种山羊瘤胃菌群结构比较及其功能预测分析 [J]. 南方农业学报, 2022, 53(6):1724−1733. doi: 10.3969/j.issn.2095-1191.2022.06.026
ZHANG Y, ZHANG S B, SHEN Y J, et al. Rumen microbial community structure comparison and function prediction of two goat breeds [J]. Journal of Southern Agriculture, 2022, 53(6): 1724−1733.(in Chinese) doi: 10.3969/j.issn.2095-1191.2022.06.026
|